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Endocrinology ; 157(1): 16-22, 2016 Jan.
Article in English | MEDLINE | ID: mdl-26517045

ABSTRACT

Activating autoantibodies to the ß1-adrenergic and M2 muscarinic receptors are present in a very high percentage of patients with Graves' disease and atrial fibrillation (AF). The objective of this study was to develop a reproducible animal model and thereby to examine the impact of these endocrine-like autoantibodies alone and with thyroid hormone on induction of thyroid-associated atrial tachyarrhythmias. Five New Zealand white rabbits were coimmunized with peptides from the second extracellular loops of the ß1-adrenergic and M2 muscarinic receptors to produce both sympathomimetic and parasympathomimetic antibodies. A catheter-based electrophysiological study was performed on anesthetized rabbits before and after immunization and subsequent treatment with thyroid hormone. Antibody expression facilitated the induction of sustained sinus, junctional and atrial tachycardias, but not AF. Addition of excessive thyroid hormone resulted in induced sustained AF in all animals. AF induction was blocked acutely by the neutralization of these antibodies with immunogenic peptides despite continued hyperthyroidism. The measured atrial effective refractory period as one parameter of AF propensity shortened significantly after immunization and was acutely reversed by peptide neutralization. No further decrease in the effective refractory period was observed after the addition of thyroid hormone, suggesting other cardiac effects of thyroid hormone may contribute to its role in AF induction. This study demonstrates autonomic autoantibodies and thyroid hormone potentiate the vulnerability of the heart to AF, which can be reversed by decoy peptide therapy. These data help fulfill Witebsky's postulates for an increased autoimmune/endocrine basis for Graves' hyperthyroidism and AF.


Subject(s)
Atrial Fibrillation/etiology , Disease Models, Animal , Graves Disease/physiopathology , Receptor, Muscarinic M2/metabolism , Receptors, Adrenergic, beta-1/metabolism , Tachycardia/etiology , Thyroxine/metabolism , Adrenergic beta-1 Receptor Agonists/blood , Adrenergic beta-1 Receptor Agonists/chemistry , Adrenergic beta-1 Receptor Agonists/metabolism , Animals , Antigens/pharmacology , Antigens/therapeutic use , Antigens/toxicity , Atrial Fibrillation/chemically induced , Atrial Fibrillation/immunology , Atrial Fibrillation/prevention & control , Autoantibodies/analysis , Autoantibodies/biosynthesis , Autoantibodies/chemistry , Coronary Sinus/drug effects , Coronary Sinus/immunology , Coronary Sinus/physiopathology , Graves Disease/blood , Graves Disease/immunology , Graves Disease/metabolism , Heart Atria/drug effects , Heart Atria/immunology , Heart Atria/physiopathology , Heart Conduction System/drug effects , Heart Conduction System/immunology , Heart Conduction System/physiopathology , Male , Muscarinic Agonists/blood , Muscarinic Agonists/chemistry , Muscarinic Agonists/metabolism , Peptide Fragments/pharmacology , Peptide Fragments/therapeutic use , Peptide Fragments/toxicity , Rabbits , Receptor, Muscarinic M2/agonists , Receptor, Muscarinic M2/chemistry , Receptors, Adrenergic, beta-1/chemistry , Refractory Period, Electrophysiological/drug effects , Tachycardia/chemically induced , Thyroxine/blood , Thyroxine/pharmacology , Thyroxine/poisoning , Up-Regulation/drug effects
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